Machine learning modeling of RNA structures: methods, challenges and future perspectives

Author:

Wu Kevin E123,Zou James Y13ORCID,Chang Howard43

Affiliation:

1. Department of Computer Science, Stanford University , Stanford, CA 94305 , USA

2. Center for Personal Dynamic Regulomes, Stanford University , Stanford, CA 94305 , USA

3. Department of Biomedical Data Science, Stanford University School of Medicine , Stanford, CA 94305 , USA

4. Howard Hughes Medical Institute, Stanford University , Stanford, CA 94305 , USA

Abstract

Abstract The three-dimensional structure of RNA molecules plays a critical role in a wide range of cellular processes encompassing functions from riboswitches to epigenetic regulation. These RNA structures are incredibly dynamic and can indeed be described aptly as an ensemble of structures that shifts in distribution depending on different cellular conditions. Thus, the computational prediction of RNA structure poses a unique challenge, even as computational protein folding has seen great advances. In this review, we focus on a variety of machine learning-based methods that have been developed to predict RNA molecules’ secondary structure, as well as more complex tertiary structures. We survey commonly used modeling strategies, and how many are inspired by or incorporate thermodynamic principles. We discuss the shortcomings that various design decisions entail and propose future directions that could build off these methods to yield more robust, accurate RNA structure predictions.

Funder

Chan-Zuckerberg Biohub

Publisher

Oxford University Press (OUP)

Subject

Molecular Biology,Information Systems

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